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A statistical method for region-based meta-analysis of genome-wide association studies in genetically diverse populations

机译:一种用于基因多样性人群中全基因组关联研究的基于区域的荟萃分析的统计方法

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摘要

Genome-wide association studies (GWAS) have become the preferred experimental design in exploring the genetic etiology of complex human traits and diseases. Standard SNP-based meta-analytic approaches have been utilized to integrate the results from multiple experiments. This fundamentally assumes that the patterns of linkage disequilibrium (LD) between the underlying causal variants and the directly genotyped SNPs are similar across the populations for the same SNPs to emerge with surrogate evidence of disease association. We introduce a novel strategy for assessing regional evidence of phenotypic association that explicitly incorporates the extent of LD in the region. This provides a natural framework for combining evidence from multi-ethnic studies of both dichotomous and quantitative traits that (i) accommodates different patterns of LD, (ii) integrates different genotyping platforms and (iii) allows for the presence of allelic heterogeneity between the populations. Our method can also be generalized to perform gene-based or pathway-based analyses. Applying this method on real GWAS data in type 2 diabetes (T2D) boosted the association evidence in regions well-established for T2D etiology in three diverse South-East Asian populations, as well as identified two novel gene regions and a biologically convincing pathway that are subsequently validated with data from the Wellcome Trust Case Control Consortium.
机译:全基因组关联研究(GWAS)已成为探索复杂人类特征和疾病的遗传病因学的首选实验设计。基于标准SNP的荟萃分析方法已被用于整合多个实验的结果。这从根本上假设,潜在的因果变异体与直接基因分型的SNP之间的连锁不平衡(LD)模式在整个人群中是相似的,并且出现了具有疾病关联性的替代证据。我们介绍了一种评估表型关联的区域证据的新策略,该策略明确纳入了该区域的LD范围。这提供了一个自然的框架,可以将来自多种族研究的二分和定量特征的证据结合在一起,这些证据包括:(i)适应不同的LD模式,(ii)整合了不同的基因分型平台,(iii)允许种群之间存在等位基因异质性。我们的方法也可以推广到基于基因或基于途径的分析。将这种方法应用于2型糖尿病(T2D)的真实GWAS数据,在三个不同的东南亚人群中为T2D病因学确定的区域中建立了关联证据,并确定了两个新的基因区域和一条生物学上令人信服的途径随后使用惠康信托案例控制协会的数据进行了验证。

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